SEQUENCE DEPENDENCE OF PROTEIN FOLDING KINETICS
SEQUENCE DEPENDENCE OF PROTEIN FOLDING KINETICS
批准号:
2190660
负责人:
DAVID BAKER
金额:
$10.8万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
1995
资助国家:
美国
项目状态:
已结题
起止时间:
1995-02-01 至 2000-01-31
关键词:
X ray crystallography biophysics chemical information system chemical kinetics chemical models circular dichroism computer assisted sequence analysis conformation fluorescence spectrometry immunoglobulin G intermolecular interaction mutant nuclear magnetic resonance spectroscopy nucleic acid sequence protein denaturation protein folding protein purification protein sequence protein structure site directed mutagenesis stop flow technique structural biology thermodynamics
中文摘要
蛋白质折叠需要有通往天然状态的途径。
英文摘要
Protein folding requires the existence of pathways to the native state.
Although the contribution of amino acid residues to the thermodynamic
stability of proteins has been intensively studied, very little is known
about how amino acid sequences specify folding pathways. The proposed
research is a combined molecular biological and biophysical approach to
this problem. Because the complexity of the folding problem increases
with chain length, the research will focus on one of the shortest
sequences known to fold into a unique, stable structure without disulfide
bonds: the 56 residue IgG binding domain of Peptostreptococcal Protein L.
Extremely heavy mutagenesis protein L followed by selection for IgG
binding using the phage display technology will be used to generate a
database of very divergent sequences which adopt the same fold. Analysis
of features conserved in the database should identify residues and
interactions important in specifying the folding pathway. Determination
of the folding times of a divergent subset of the sequences will provide
insight into how sequence controls the selection and rate of traversal of
kinetic pathways. The folding pathways of the most slowly folding mutants
will be mapped using NMR methods. The sequence, rate and structure
database together with the biophysical data on the folding pathway will be
used to guide and constrain the development of a quantitative theory for
the folding of this small protein. A detailed understanding of how amino
acid sequence specifies tertiary structure in this simplest possible case
should contribute to the understanding of the folding of more complex
proteins.
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